| Literature DB >> 25084334 |
James A J Arpino1, Pierre J Rizkallah2, D Dafydd Jones1.
Abstract
Single-amino-acid deletions are a common part of the natural evolutionary landscape but are rarely sampled during protein engineering owing to limited and prejudiced molecular understanding of mutations that shorten the protein backbone. Single-amino-acid deletion variants of enhanced green fluorescent protein (EGFP) have been identified by directed evolution with the beneficial effect of imparting increased cellular fluorescence. Biophysical characterization revealed that increased functional protein production and not changes to the fluorescence parameters was the mechanism that was likely to be responsible. The structure EGFP(D190Δ) containing a deletion within a loop revealed propagated changes only after the deleted residue. The structure of EGFP(A227Δ) revealed that a `flipping' mechanism was used to adjust for residue deletion at the end of a β-strand, with amino acids C-terminal to the deletion site repositioning to take the place of the deleted amino acid. In both variants new networks of short-range and long-range interactions are generated while maintaining the integrity of the hydrophobic core. Both deletion variants also displayed significant local and long-range changes in dynamics, as evident by changes in B factors compared with EGFP. Rather than being detrimental, deletion mutations can introduce beneficial structural effects through altering core protein properties, folding and dynamics, as well as function.Entities:
Keywords: enhanced green fluorescent protein; protein engineering; single-amino-acid deletions
Mesh:
Substances:
Year: 2014 PMID: 25084334 PMCID: PMC4118826 DOI: 10.1107/S139900471401267X
Source DB: PubMed Journal: Acta Crystallogr D Biol Crystallogr ISSN: 0907-4449
Figure 1Effect of single-amino-acid deletions on secondary-structure registry. (a) Deletion of a single amino acid (blue circle) from a loop region connecting two ordered secondary-structural elements (red rectangles) is usually accommodated by loop shortening. Deletion of an amino acid from (b) a β-strand or (c) an α-helix results in registry shifts. Amino acids are coloured red or blue to distinguish between different faces of a secondary structure.
Figure 2Whole-cell fluorescence spectra and single-amino-acid deletion positions. (a) Whole-cell fluorescence spectra normalized to the EGFP emission maxima. (b) Side and (c) bottom views of the tertiary structure of EGFP (PDB entry 4eul) with the chromophore shown as sticks and single-amino-acid deletion positions highlighted by blue spheres. In (c), the distances between the residues are shown.
Spectral characteristics of EGFP and EGFP variants
| Mutation ( |
ex
|
em
|
|
| Brightness |
|
|---|---|---|---|---|---|---|
| EGFP | 488 | 511 | 55000 | 0.60 | 33000 | 2.54 0.04 |
| G4 | 487 | 512 | 53070 | 0.59 | 31300 | 2.64 0.05 |
| D190 | 486 | 510 | 53430 | 0.58 | 30990 | 2.56 0.05 |
| A227 | 487 | 511 | 51850 | 0.61 | 31630 | 2.44 0.04 |
ex and em determined from mean fluorescence spectra.
Extinction coefficient determined from single absorbance measurement.
Quantum yield determined from integrated fluorescence emission against a fluorescein standard.
Brightness = extinction coefficient quantum yield.
Fluorescence lifetimes are mean values with errors calculated from the standard deviation of three measurements.
Values for G4 are also reported elsewhere (Arpino et al., 2014 ▶) but are presented here for comparison.
Cystallographic statistics
Values in parentheses are for the last shell.
| Variant | EGFPD190 | EGFPA227 |
|---|---|---|
| Beamline | I03 | I04 |
| Wavelength () | 0.97630 | 0.97950 |
| Space group |
|
|
| Unit-cell parameters | ||
|
| 57.1 | 51.5 |
|
| 57.1 | 63.1 |
|
| 135.3 | 65.7 |
| Resolution range () | 21.811.14 | 51.451.60 |
| Total reflections measured | 834263 | 223019 |
| Unique reflections | 91397 | 28209 |
| Completeness (%) | 97.3 (75.1) | 98.1 (97.4) |
|
| 16.1 (2.2) | 15.2 (3.4) |
|
| 6.5 (62.9) | 9.2 (77.7) |
|
| 10.5 | 13.4 |
| Refinement statistics | ||
| Protein atoms (excluding H) | 2066 | 1901 |
| Solvent molecules | 303 | 210 |
|
| 13.9 | 17.4 |
|
| 15.6 | 20.2 |
| R.m.s.d., bond lengths () | 0.028 | 0.020 |
| R.m.s.d., angles () | 2.7 | 2.1 |
| Ramachandran plot statistics | ||
| Core region (%) | 98.0 | 97.3 |
| Allowed region (%) | 2.0 | 2.7 |
| Additionally allowed region (%) | 0 | 0 |
| Disallowed region (%) | 0 | 0 |
R merge = .
R factor = .
R free is calculated from a set of 5% randomly selected reflections that were excluded from refinement.
Figure 3Superposition of EGFP with either (a) EGFPD190Δ (blue) or (b) EGFPA227Δ (grey). The chromophores are shown in stick representation and the amino acids deleted are shown as blue spheres.
Figure 4Structural effects of the D190Δ mutation on EGFP. (a) R.m.s.d. between EGFP and EGFPD190Δ over the residues immediately before and after Asp190. Backbone atoms and all atoms are coloured black and grey, respectively. (b, c) Superpositioning of EGFP (green) with EGFPD190Δ (blue) with the backbone (b) and the side-chain atoms (c) in the loop connecting S9 to S10 displayed. Alternate backbone and side-chain conformations for Val193 in EGFPD190Δ are shown as yellow sticks.
Figure 5Long-range effects of Asp190 deletion on the EGFP structure. (a) Putty diagram illustrating differences in B factors for EGFPD190Δ (left) and EGFP (right). Increased B factors are shown as increased thickness and a colour transition (blue to orange). (b, c) The local hydrogen-bond (b) and hydrophobic (c) networks for EGP (green) and EGFPD190Δ (blue).
Figure 6Structural effects of Ala227 deletion on EGFP. (a) Superimposition of residues comprising β-strand S11 in EGFP (green) and EGFPA227Δ (grey). (b) Changes in long-range interactions. Alternate conformations for His148 and Tyr151 in EGFPA227Δ are shown as yellow sticks.
Figure 7Propagated effect of deleting Ala227 on EGFP dynamics. Putty diagram illustrating the difference in B factors for EGFP (top) and EGFPA227Δ (bottom). Increased B factors are shown as increased thickness and a colour transition (blue to orange).